Deep neural-network based optimization for the design of a multi-element surface magnet for MRI applications

被引:1
作者
Tewari, Sumit [1 ]
Yousefi, Sahar [2 ]
Webb, Andrew [1 ]
机构
[1] Leiden Univ Med Ctr, CJ Gorter Ctr High Field MRI, Radiol, Leiden, Netherlands
[2] Leiden Univ Med Ctr, Div Image Proc, Leiden, Netherlands
基金
欧洲研究理事会; 欧盟地平线“2020”;
关键词
optimization problem; inverse problem; deep neural network; self-training; magnet design; surface-magnets; MRI; INVERSE PROBLEMS; NMR;
D O I
10.1088/1361-6420/ac492a
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
We present a combination of a CNN-based encoder with an analytical forward map for solving inverse problems. We call it an encoder-analytic (EA) hybrid model. It does not require a dedicated training dataset and can train itself from the connected forward map in a direct learning fashion. A separate regularization term is not required either, since the forward map also acts as a regularizer. As it is not a generalization model it does not suffer from overfitting. We further show that the model can be customized to either find a specific target solution or one that follows a given heuristic. As an example, we apply this approach to the design of a multi-element surface magnet for low-field magnetic resonance imaging (MRI). We further show that the EA model can outperform the benchmark genetic algorithm model currently used for magnet design in MRI, obtaining almost 10 times better results.
引用
收藏
页数:10
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